Related Experiment Video
Updated: Apr 28, 2026

Combined Nucleotide and Protein Extractions in Caenorhabditis elegans
Published on: March 17, 2019
Multi-omics dissection of a ceRNA-PKS regulatory network underlying lead tolerance in Morchella sextelata
Shishi Liu1, Zonglin Deng2, Xuelian Cao1
1Sichuan Institute of Edible Fungi, National-Local Joint Engineering Laboratory of Breeding and Cultivation of Edible and Medicinal Fungi, Environment-friendly and Efficient Water-Saving Technology and Equipment for Hilly Agriculture Key Laboratory of Sichuan Province, Sichuan Academy of Agricultural Sciences, Chengdu 610066, China.
Abstract:
Heavy metal contamination severely threatens soil ecosystems and edible fungi. Comparative analyses of three Morchella species under Pb stress identified Morchella sextelata as highly tolerant, warranting further investigation. Multi-omics analyses revealed that this resilience is mediated by an integrated post-transcriptional and metabolic regulatory system. A circRNA-miRNA-mRNA (ceRNA) network functions as a molecular switch to activate the core polyketide synthase gene MsPKS, redirecting metabolic flux toward defense pathways. This activation establishes a multi-dimensional defense network comprising: an enzymatic antioxidant shield via SOD; concurrent non-enzymatic biochemical buffering involving N-acetyl-D-cysteine and dTDP-sugars; and a structural barrier formed by PKS-derived pigments that sequester Pb and mitigate oxidative damage. Through this coordinated strategy, M. sextelata maintains cellular homeostasis while prioritizing survival under severe Pb stress. This study reveals a previously unrecognized link between post-transcriptional regulation and metabolite-driven heavy metal defense, providing a mechanistic basis for fungal adaptation and bioremediation potential.

